Polarization Changes of Pulsars due to Wave Propagation Through Magnetospheres
Chen Wang, Dong Lai, JinLin Han

TL;DR
This paper investigates how radio wave propagation effects in pulsar magnetospheres influence observed polarization and intensity profiles, revealing significant modifications due to various physical processes in the plasma environment.
Contribution
It provides a comprehensive, self-consistent numerical analysis of wave polarization transfer in pulsar magnetospheres, incorporating multiple physical effects for the first time.
Findings
Polarization profiles can be strongly modified by propagation effects.
Large impact parameters yield polarization angles similar to the Rotating Vector Model with phase shifts.
Small impact parameters can cause 90° jumps in polarization angle and complex circular polarization profiles.
Abstract
We study the propagation effects of radio waves in a pulsar magnetosphere, composed of relativistic electron-positron pair plasmas streaming along the magnetic field lines and corotating with the pulsar. We critically examine the various physical effects that can potentially influence the observed wave intensity and polarization, including resonant cyclotron absorption, wave mode coupling due to pulsar rotation, wave propagation through quasi-tangential regions (where the photon ray is nearly parallel to the magnetic field) and mode circularization due to the difference in the electron/positron density/velocity distributions. We numerically integrate the transfer equations for wave polarization in the rotating magnetosphere, taking account of all the propagation effects in a self-consistent manner. For typical magnetospheric plasma parameters produced by pair cascade, we find that the…
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